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WO1998039805A1 - Diode emettant une lumiere blanche - Google Patents

Diode emettant une lumiere blanche Download PDF

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Publication number
WO1998039805A1
WO1998039805A1 PCT/IB1998/000219 IB9800219W WO9839805A1 WO 1998039805 A1 WO1998039805 A1 WO 1998039805A1 IB 9800219 W IB9800219 W IB 9800219W WO 9839805 A1 WO9839805 A1 WO 9839805A1
Authority
WO
WIPO (PCT)
Prior art keywords
light
phosphor
emitting
diode
phosphors
Prior art date
Application number
PCT/IB1998/000219
Other languages
German (de)
English (en)
Inventor
Thomas JÜSTEL
Hans Nikol
Cees Ronda
Original Assignee
Koninklijke Philips Electronics N.V.
Philips Patentverwaltung Gmbh
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from DE19756360A external-priority patent/DE19756360A1/de
Application filed by Koninklijke Philips Electronics N.V., Philips Patentverwaltung Gmbh filed Critical Koninklijke Philips Electronics N.V.
Priority to DE59814117T priority Critical patent/DE59814117D1/de
Priority to JP10529267A priority patent/JP2000509912A/ja
Priority to EP98903213A priority patent/EP0907970B1/fr
Publication of WO1998039805A1 publication Critical patent/WO1998039805A1/fr
Priority to US09/185,006 priority patent/US6084250A/en

Links

Classifications

    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10HINORGANIC LIGHT-EMITTING SEMICONDUCTOR DEVICES HAVING POTENTIAL BARRIERS
    • H10H20/00Individual inorganic light-emitting semiconductor devices having potential barriers, e.g. light-emitting diodes [LED]
    • H10H20/80Constructional details
    • H10H20/85Packages
    • H10H20/851Wavelength conversion means
    • H10H20/8511Wavelength conversion means characterised by their material, e.g. binder
    • H10H20/8512Wavelength conversion materials
    • H10H20/8513Wavelength conversion materials having two or more wavelength conversion materials

Definitions

  • the invention relates to a light-emitting device for generating white light from a luminescence diode and a phosphor layer.
  • Luminescent diodes are used as signal lights, indicator displays, control and warning lamps, as light transmitters in light barriers, for optocouplers, IR
  • Remote control and fiber optic transmission systems applied. They offer a whole range of advantages over other light-emitting components, e.g. Lightbulbs. They have a long service life, high shock and vibration resistance, good modulation ability down to the MHZ range, high packing densities, wide circuit compatibility and no inrush current peaks. They require a low operating voltage and have a low power consumption.
  • any color of visible light can be derived from short-wave light, i.e. generate blue, violet and ultraviolet light.
  • the luminescent diode which emits short-wave light
  • a suitable phosphor which converts the short-wave light into the desired color by absorbing the short-wave light and re-emitting light of the other color in the longer-wave range.
  • White light can e.g. B. with a blue emitting Luminescent diodes produce when combined with a phosphor that absorbs blue light, converts it and emits it as light in the yellow-orange region of the spectrum.
  • the yellow-orange light mixes with the remaining portion of the blue light from the luminescent diode and blue together with the complementary color yellow gives white light.
  • JP 08007614 A Patent Abstracts of Japan
  • a flat light source for which a light-emitting diode is used, which emits blue light, and which is combined with a fluorescent layer made of an orange fluorescent pigment, so that the blue light of the Diode can be observed as white light.
  • a disadvantage of this light source is that the hue of the white light is strongly influenced by the small amount of the fluorescent pigment in the fluorescent layer and is therefore difficult to control.
  • Good color rendering is only possible with a high color temperature between 8000 and 8600 K. If you lower the color temperature, the color rendering index CRI drops significantly.
  • the object is achieved by a light-emitting device with a UV diode with a primary emission of 300 nm ⁇ ⁇ 370 nm and with a phosphor layer with a combination of a blue-emitting phosphor with an emission band with 430 nm ⁇ ⁇ 470 nm, a green-emitting phosphor with an emission band with 525 nm ⁇ ⁇ 570 nm and a red-emitting, europium-containing phosphor with an emission band with 600 nm ⁇ ⁇ 630 nm.
  • the light-emitting device shows high color rendering and at the same time high efficiency because the phosphors absorb the UV band with high efficiency, the quantum yield is high - over 90% - and the half-width of the emission line is narrow.
  • the luminous efficacy is high because no light is emitted in the range above 440 nm and below 650 nm, where eye sensitivity is low.
  • the white light emitted by the light emitting device is of high quality.
  • the color rendering index CRI is 90 at a color temperature of 4000 K. The color rendering depends only on the composition of the three phosphors, not on the ratio of converted to unconverted light and is therefore easy to control and regulate.
  • the red-emitting phosphor is a line emitter with an emission band with a wavelength maximum with 605 nm ⁇ ⁇ 620 nm.
  • the green-emitting phosphor is a line emitter with an emission band with a wavelength maximum of 520 nm ⁇ 570 nm.
  • the UV diode is a GaN diode.
  • the phosphor layer contains a blue-emitting phosphor in an amount xl of 0 ⁇ xl ⁇ 30% by weight, a green-emitting phosphor in an amount x2 of 20 ⁇ x2 ⁇ 50% by weight. -% and contains a red-emitting phosphor in an amount x3 of 30 ⁇ x3 ⁇ 70 wt .-%.
  • the phosphor layer contains BaMgAl 10 O 17 : Eu as the blue-emitting phosphor, ZnS: Cu as the green-emitting phosphor, and Y 2 O 2 S as the red-emitting phosphor.
  • Fig. 1 Light emitting device
  • a light-emitting device comprises a UV diode as an excitation source for the UV radiation and a phosphor layer, with a mixture of three phosphors which convert the UV light of the UV diode into visible, white light.
  • the device is constructed in such a way that the UV diode is cast into a hemispherical bowl made of a polymer, which is arranged on a transparent substrate (front plate) 1.
  • the three phosphor powders 2 are embedded in the polymer 3 in finely divided form.
  • the polymer bowl forms the phosphor layer together with the phosphor powders.
  • the device according to the invention can further comprise mirrors 4 for UV and visible light to improve the coupling out of light.
  • the bowl itself can be designed as a reflector.
  • the light-emitting device consists of a
  • the transparent coating can contain, for example, the phosphors in a solid solution in a transparent matrix made of polyacrylate, polystyrene, epoxy resin or another polymer.
  • LEDs are usually cast in epoxy resin housings, with a molded dome-shaped lens made of epoxy resin serving to improve the coupling-out of the light from the diode.
  • the phosphors can be applied as a contact layer between the actual diode and the epoxy resin dome. They can also be applied as a coating on the outside of the epoxy resin dome.
  • the diode array can be covered by a glass plate which is printed with the phosphors.
  • the UV diode is in particular a UV diode made of InGaN or GaN and has its emission maximum between 370 and 410 nm with a half width FWHM ⁇
  • Means for supplying electrical energy to the UV diode are provided to maintain the light emission. These means comprise at least two electrodes.
  • the three phosphors are selected so that they are excited by the UV light of the UV diode and that the red phosphor has a narrow emission line at 590 nm ⁇ ⁇ 630 nm, the green phosphor has a narrow emission line at 520 nm ⁇ ⁇ 570 nm and the blue phosphor has a narrow emission line at 430 nm ⁇ ⁇ 490 nm.
  • a broadband emitter can also be used for the blue phosphor instead of a line emitter with a narrow emission line.
  • the emission lines of the three phosphors can be matched very precisely to one another, even if the emissions are not entirely independent of one another, since emission edges partially overlap. This enables the color coordinates of the white light to be set precisely.
  • the phosphors are preferably lanthanide-activated phosphors, for example Eu 3+ or Tb 3 + -activated phosphors.
  • These complex coordination compounds of europium (III) contain Eu 3+ as the metal center, diketonates as anionic chelate ligands and 2,2'-bipyridine or a 2,2'-bipyridyl derivative as neutral chelate ligands.
  • Pentane-2,4-dithionate (acac), 2,2,6,6-tetramethyl-3,5-heptane dithionate (thd), l- (2-thenoyl) -4,4,4-trifluoro-l are used as diketonates , 3, butanedithionate (ttfa), 7,7-dimethyl-l, l, l, 2,2,3,3-heptafluoro-4,6-octanedithionate (fod), 4, 4, 4-trifluoro-1 - ( 2-naphty 1) - 1,3-butanedithionate (tfnb), 1,3-diphenyl-1,3-propanedithionate (dbm), as neutral ligands X pyridine, or the bidentate ligands 2,2'-bipyridine (bpy), 1, 10-phenanthroline (phen), 4,7-diphenyl-l, 10-phenanthroline (dpphen), 5-methyl
  • Tab. 1 shows the blue-emitting, green-emitting and red-emitting phosphors for the light-emitting device according to the invention their wavelength maximum and their absorption at 370 nm.
  • the mixture according to the invention gives a good color rendering index and, at the same time, a good energy yield.
  • the light-emitting device has a color rendering index CRI ⁇ 90 at a color temperature> 4000 K and is therefore suitable for interior lighting.
  • the three phosphors can be applied to the diode surface as a coating with a binder.
  • Suitable binders are, for example, film-forming acrylic polymers such as methyl acrylate and polystyrene. Alternatively, they can be added in microgram quantities to the epoxy resin of the epoxy resin dome and distributed evenly throughout the epoxy resin dome.
  • Another transparent thermoset can be used instead of epoxy resin. This gives a more diffuse emission of white light. Because of the high brightness of the light emitting device, it may be desirable for safety reasons that the light emission be more diffuse.
  • the UV diode In operation, the UV diode generates UV light with a wavelength ⁇ ⁇ 370 nm, which falls on the mixture of phosphors in the phosphor layer. These absorb the radiation and emit longer-wave radiation, i.e. the phosphors transform the invisible UV radiation into visible light, which is converted into visible light by the phosphors.
  • the light of the desired composition is obtained by mixing the three phosphors with different emission lines.
  • the light-emitting device according to the invention Since the lighting of the light-emitting device according to the invention is not the light emitted by a glowing body, but rather the excitation lighting of the phosphors in the phosphor layer, the light yield is extremely high.
  • the light-emitting device according to the invention provides pleasant, color-true light.
  • the visible emission lines of the phosphors are so close together that a quasi-continuous spectrum results, which results in good color rendering.
  • a light-emitting device was produced from a UV diode and a phosphor layer with a mixture of the three phosphors.
  • An undoped GaN diode with transparent sapphire was used as the diode substrate.
  • the diode substrate was coated with a suspension of three phosphors in different proportions according to Table 2 in a 1% polyvinyl alcohol solution and baked at 200 ° C. Tab. 2
  • a light-emitting device was produced from a UV diode and a phosphor layer with a mixture of the three phosphors.
  • An undoped GaN diode with transparent sapphire was used as the diode substrate.
  • the diode substrate was coated with a suspension of three phosphors in different proportions according to Table 2 in a 1% polyvinyl alcohol solution and baked at 200 ° C.
  • a light-emitting device was produced from a UV diode and a phosphor layer with a mixture of the three phosphors.
  • the diode substrate was coated with a suspension of three phosphors in different proportions according to Table 2 in a 1% polyvinyl alcohol solution and baked at 200 ° C.

Landscapes

  • Led Device Packages (AREA)
  • Luminescent Compositions (AREA)

Abstract

L'invention concerne un dispositif émettant une lumière, comportant une diode UV avec une émission primaire de 300 nm ≤ μ ≤ 370 nm, et une couche de phosphore contenant une combinaison de phosphore émettant une lumière bleue avec une bande d'émission de 430 nm ≤ μ ≤ 490 nm, un phosphore émettant une lumière verte avec une bande d'émission de 520 nm ≤ μ ≤ 570 nm, un phosphore émettant une lumière rouge avec une bande d'émission de 590 nm ≤ μ ≤ 630 nm. Ledit dispositif émet une lumière blanche de qualité élevée. L'indice de rendu des couleurs CRI est de l'ordre de 90 à une température de couleur de 4000 K. Le rendu des couleurs dépend uniquement de la composition des trois phosphores, et non de la relation entre la lumière convertie et non convertie, c'est pourquoi il est facile à contrôler et à réguler.
PCT/IB1998/000219 1997-03-03 1998-02-23 Diode emettant une lumiere blanche WO1998039805A1 (fr)

Priority Applications (4)

Application Number Priority Date Filing Date Title
DE59814117T DE59814117D1 (de) 1997-03-03 1998-02-23 Weisse lumineszenzdiode
JP10529267A JP2000509912A (ja) 1997-03-03 1998-02-23 白色光発光ダイオード
EP98903213A EP0907970B1 (fr) 1997-03-03 1998-02-23 Diode emettant une lumiere blanche
US09/185,006 US6084250A (en) 1997-03-03 1998-11-03 White light emitting diode

Applications Claiming Priority (4)

Application Number Priority Date Filing Date Title
DE19708407 1997-03-03
DE19756360A DE19756360A1 (de) 1997-03-03 1997-12-18 Weisse Lumineszenzdiode
DE19756360.0 1997-12-18
DE19708407.9 1998-01-21

Related Child Applications (1)

Application Number Title Priority Date Filing Date
US09/185,006 Continuation US6084250A (en) 1997-03-03 1998-11-03 White light emitting diode

Publications (1)

Publication Number Publication Date
WO1998039805A1 true WO1998039805A1 (fr) 1998-09-11

Family

ID=26034429

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/IB1998/000219 WO1998039805A1 (fr) 1997-03-03 1998-02-23 Diode emettant une lumiere blanche

Country Status (5)

Country Link
US (1) US6084250A (fr)
EP (1) EP0907970B1 (fr)
JP (1) JP2000509912A (fr)
DE (1) DE59814117D1 (fr)
WO (1) WO1998039805A1 (fr)

Cited By (29)

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GB2347018A (en) * 1999-02-18 2000-08-23 Hewlett Packard Co White light emitting devices
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US6252254B1 (en) 1998-02-06 2001-06-26 General Electric Company Light emitting device with phosphor composition
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EP1116989A2 (fr) * 2000-01-14 2001-07-18 Philips Corporate Intellectual Property GmbH Affichage couleur à cristal liquide avec couche de matériau luminescent
US6278135B1 (en) 1998-02-06 2001-08-21 General Electric Company Green-light emitting phosphors and light sources using the same
WO2001089001A2 (fr) 2000-05-15 2001-11-22 General Electric Company Melanges phosphoreux d'emission de lumiere blanche pour dispositifs a diode electroluminescente
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EP0907970A1 (fr) 1999-04-14
JP2000509912A (ja) 2000-08-02
DE59814117D1 (de) 2007-12-20
EP0907970B1 (fr) 2007-11-07
US6084250A (en) 2000-07-04

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